EP3146285B1 - Method and arrangement for preventing gas from leaving an opening of a vessel - Google Patents
Method and arrangement for preventing gas from leaving an opening of a vessel Download PDFInfo
- Publication number
- EP3146285B1 EP3146285B1 EP15796168.1A EP15796168A EP3146285B1 EP 3146285 B1 EP3146285 B1 EP 3146285B1 EP 15796168 A EP15796168 A EP 15796168A EP 3146285 B1 EP3146285 B1 EP 3146285B1
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- EP
- European Patent Office
- Prior art keywords
- opening
- vessel
- gas
- furnace
- arrangement
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F27—FURNACES; KILNS; OVENS; RETORTS
- F27D—DETAILS OR ACCESSORIES OF FURNACES, KILNS, OVENS OR RETORTS, IN SO FAR AS THEY ARE OF KINDS OCCURRING IN MORE THAN ONE KIND OF FURNACE
- F27D21/00—Arrangement of monitoring devices; Arrangement of safety devices
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F27—FURNACES; KILNS; OVENS; RETORTS
- F27D—DETAILS OR ACCESSORIES OF FURNACES, KILNS, OVENS OR RETORTS, IN SO FAR AS THEY ARE OF KINDS OCCURRING IN MORE THAN ONE KIND OF FURNACE
- F27D17/00—Arrangements for using waste heat; Arrangements for using, or disposing of, waste gases
- F27D17/30—Arrangements for extraction or collection of waste gases; Hoods therefor
- F27D17/304—Arrangements for extraction or collection of waste gases; Hoods therefor specially adapted for electric arc furnaces
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F27—FURNACES; KILNS; OVENS; RETORTS
- F27D—DETAILS OR ACCESSORIES OF FURNACES, KILNS, OVENS OR RETORTS, IN SO FAR AS THEY ARE OF KINDS OCCURRING IN MORE THAN ONE KIND OF FURNACE
- F27D3/00—Charging; Discharging; Manipulation of charge
- F27D3/16—Introducing a fluid jet or current into the charge
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F27—FURNACES; KILNS; OVENS; RETORTS
- F27D—DETAILS OR ACCESSORIES OF FURNACES, KILNS, OVENS OR RETORTS, IN SO FAR AS THEY ARE OF KINDS OCCURRING IN MORE THAN ONE KIND OF FURNACE
- F27D99/00—Subject matter not provided for in other groups of this subclass
- F27D99/0073—Seals
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- C—CHEMISTRY; METALLURGY
- C21—METALLURGY OF IRON
- C21C—PROCESSING OF PIG-IRON, e.g. REFINING, MANUFACTURE OF WROUGHT-IRON OR STEEL; TREATMENT IN MOLTEN STATE OF FERROUS ALLOYS
- C21C5/00—Manufacture of carbon-steel, e.g. plain mild steel, medium carbon steel or cast steel or stainless steel
- C21C5/28—Manufacture of steel in the converter
- C21C5/42—Constructional features of converters
- C21C5/46—Details or accessories
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- C—CHEMISTRY; METALLURGY
- C21—METALLURGY OF IRON
- C21C—PROCESSING OF PIG-IRON, e.g. REFINING, MANUFACTURE OF WROUGHT-IRON OR STEEL; TREATMENT IN MOLTEN STATE OF FERROUS ALLOYS
- C21C7/00—Treating molten ferrous alloys, e.g. steel, not covered by groups C21C1/00 - C21C5/00
- C21C7/10—Handling in a vacuum
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F27—FURNACES; KILNS; OVENS; RETORTS
- F27D—DETAILS OR ACCESSORIES OF FURNACES, KILNS, OVENS OR RETORTS, IN SO FAR AS THEY ARE OF KINDS OCCURRING IN MORE THAN ONE KIND OF FURNACE
- F27D21/00—Arrangement of monitoring devices; Arrangement of safety devices
- F27D2021/0057—Security or safety devices, e.g. for protection against heat, noise, pollution or too much duress; Ergonomic aspects
- F27D2021/0078—Security or safety devices, e.g. for protection against heat, noise, pollution or too much duress; Ergonomic aspects against the presence of an undesirable element in the atmosphere of the furnace
Definitions
- the present invention relates to a method and an arrangement for preventing egress of gas from a first opening of the vessel.
- Furnaces are used in a wide range of metallurgical processes. Many furnaces include a first opening through which feed materials can be fed to the furnace and a second opening through which an exhaust gas or flue gas can be removed from the furnace, as well as other openings for final products and by-products to be recovered.
- Typical materials that are fed to furnaces in metallurgical processes include concentrates or ores, fluxes, fuel such as coal or coke, and air or oxygen.
- the feed materials undergo reaction with the contents of the furnace to produce desirable metallurgical products. Exhaust gases are produced during the process and the exhaust gases are removed through the exhaust outlet of the furnace. Dust generated from the feed material descending in the furnace can also find its way passing with the exhaust gases and removed through the exhaust outlet.
- Top entry submerged lance furnaces comprised a furnace body or vessel.
- a feed opening is provided in the top of the furnace.
- An exhaust opening is provided laterally of the feed opening.
- Furnace feed material is passed to the furnace through the feed opening.
- a lance is inserted through a separate opening into the furnace.
- a gas and, optionally, a fuel, are passed through the lance into the furnace.
- the tip of the lance extends into the molten contents of the furnace. Injection of gas through the lance agitates the molten contents of the furnace and promotes the metallurgical reactions.
- the exhaust gases produced by the metallurgical process exit the furnace through the exhaust opening.
- One type of top entry submerged lance furnace is sole by the present applicant under the ISASMELTTM trade mark.
- US 3 198 623 A describes a gas seal at the top of a blast furnace which enables continuous charging through the furnace top.
- a blower is controlled to provide clean gas to an annular opening and an open port so that the velocity pressure of the downwardly directed gas at the blast furnace opening is substantially at least equal to the static pressure of the gas within the upper section of the blast furnace, to establish a gas seal in the form of a clean gas-dirty gas interface.
- EP 1 055 092 A1 describes a seal for a high-temperature treatment vessel such as a basic oxygen furnace used for producing steel.
- the seal comprises a plug seal having a number of mechanical seals, with the mechanical seals defining a space through which a lance can be inserted.
- a plurality of aspirating nozzles have intakes in communication with a plenum in which the high-velocity gas produces a low pressure to develop a relatively negative pressure in the plenum and thereby capture in the plenum any gas escaping past the mechanical seal.
- the present invention provides for a method for preventing egress of gas from an opening in a vessel as defined by claim 1 and to an arrangement for preventing egress of gas from an opening in a vessel as defined by claim 3 so as to at least partially overcome at least one of the abovementioned disadvantages or provide the consumer with a useful or commercial choice.
- the present invention provides a method for preventing egress of gas from a first opening of a vessel, the vessel including at least one other opening through which the gas can leave the vessel, the method comprising supplying a flow of gas to an open passage extending around the first opening and causing the flow of gas leaving the open passage to flow towards and into the vessel, characterized in that a surface of the first opening between the open passage and the vessel has a shape, when moving in a direction towards the vessel, that extends inwardly towards the centre of the first opening and then outwardly away from the centre of the first opening, the surface of the first opening between the open passage and the vessel comprising a Coanda surface whereby a gas from an environment external to the vessel is caused to be drawn into the vessel, wherein a total flow of gas into the first opening substantially prevents gas from leaving the vessel through the first opening.
- the present invention provides an arrangement for preventing egress of a gas from a first opening of a vessel, the vessel including at least one other opening through which the gas can leave the vessel, the arrangement comprising an open passage extending substantially around the first opening, the open passage receiving a flow of gas such that the flow of gas leaves the open passage and flows towards and into the vessel to cause a gas from the environment external to the vessel to be drawn into the vessel, characterized in that a surface of the first opening between the open passage and the vessel has a shape, when moving in a direction towards the vessel, that extends inwardly toward the centre of the first opening and then outwardly away from the centre of the first opening, the surface of the first opening between the open passage and the vessel comprising a Coanda surface.
- the open passage extends around the first opening.
- the term "open passage extending substantially around the first opening” should be considered to include a single passage extending around the first opening, a single passage extending almost completely around the first opening and a plurality of separate passages having ends that are closely spaced to an end of an adjacent passage such that gas leaving the separate passages causes an inflow of gas that flows inwardly across the circumferential or peripheral extent of the first opening.
- the first opening comprises a generally circular opening.
- the open passage may comprise an annular open passage extending around the first opening.
- the open passage extends around an inner surface of the first opening.
- the surface of the first opening between the open passage and the vessel is shaped to promote the flow of gas leaving the open passage to flow towards and into the vessel.
- the surface of the first opening between the open passage and the vessel has a shape, when moving in a direction towards the vessel, that extends inwardly towards the centre of the first opening and then outwardly away from the centre of the first opening.
- the surface of the first opening between the open passage and the vessel may form a venturi.
- the surface of the first opening between the open passage and the vessel comprises a Coanda surface.
- the open passage is in fluid communication with a plenum chamber.
- the plenum chamber may extend around the first opening.
- the plenum chamber receives pressurised gas.
- the pressurised gas flows from the plenum chamber through the open passage and into the vessel.
- the plenum chamber may have at least one, preferably two or more, inlets for receiving pressurised gas.
- the two or more inlets are preferably equi-spaced around the plenum chamber.
- the vessel may comprise any vessel that has a first opening and at least one other opening through which gas can leave the vessel.
- the vessel may comprise a process vessel or a storage vessel.
- the vessel may comprise a high-temperature vessel.
- the vessel may comprise a furnace.
- the vessel may comprise a top entry submerged lance furnace.
- the arrangement may further comprise a feed chute for feeding material to the vessel.
- the material that is fed to the vessel may comprise particulate material.
- the feed chute may also allow a lance to be inserted therethrough to enable the lance to be inserted into the vessel.
- the particulate material that is fed to the vessel may be selected from concentrate, sand, rocks, aggregates, coal, coke, industrial minerals, limestone, cement, fluxes, man-made materials such as super phosphate, fertilizers, pharmaceuticals, foodstuffs, chemicals, and other natural materials or natural materials such as cereals such as wheat, barley, rice, oats, corn etc.
- the arrangement of the present invention comprises an insert that is inserted into the first opening of the vessel.
- the inner surface of the insert effectively defines the first opening of the furnace.
- the insert includes a portion extending into the first opening of the vessel and another portion that defines the open passage extending around an inner periphery of the insert.
- the insert may also define the plenum chamber and the at least one inlet for receiving pressurised gas.
- the insert may comprise a flange that comes into contact with an outer surface around the first opening of the vessel to thereby position the insert relative to the first opening of the vessel.
- the arrangement in accordance with the present invention may be used to prevent egress of furnace contents from a number of furnace openings.
- a furnace is provided with two openings (such as a feed opening and a separate lance opening)
- each of the openings may be provided with their own arrangement in accordance with the present invention.
- the arrangement provided in each opening may prevent egress of furnace contents from each opening.
- the furnace will also include an exhaust system and exhaust gases will be removed from the furnace through the exhaust system.
- the exhaust system will typically include an exhaust opening and appropriate ducting/pipework.
- an arrangement in accordance with the present invention may be provided to only one of the plurality of openings to the furnace.
- Other openings of the furnace may be provided with conventional extraction equipment to prevent furnace contents coming into contact with operators.
- the feed opening may be provided with an arrangement in accordance with the invention and the lance opening may be provided with conventional extraction equipment.
- the furnace may have even more openings.
- the skilled person may choose to have only one of the openings to the furnace fitted with the arrangement in accordance with the present invention for preventing egress of furnace contents from that one opening, with other openings to the furnace thing fitted with conventional extraction equipment.
- the skilled person may choose to have two or more, or even all of the openings to the furnace (excluding the exhaust opening) fitted with the arrangement of the present invention for preventing egress of furnace contents from those openings.
- the arrangement for preventing egress of gas from a vessel as shown in the attached drawings is designed to be used in the feed opening of a top entry submerged lance furnace.
- the feed opening of a top entry submerged lance furnace is in the top surface of the furnace.
- pressurised gas passes through an annular open passage extending around an insert arrangement that, when inserted into the feed opening, effectively forms the feed opening of the furnace.
- the gas leaving the annular passageway moves downward into the vessel and causes gas from the environment external to the vessel to also flow into the vessel.
- the gas leaving the annular passage comprises a gas stream having a relatively low (volumetric) flow rate but having a relatively high speed.
- the combination of the injected gas and the entrained gas from the external atmosphere causes a total flow of gas into the feed opening of the furnace that is sufficient to prevent gas within the furnace from exiting the furnace through the feed opening.
- the arrangement 10 shown in the attached figures is designed as an insert that is inserted into the feed opening of a furnace.
- the feed opening is typically a generally circular or oval inlet or port.
- the insert 10 includes a lower cylindrical projection 12 that is sized to fit snugly into the feed opening of the furnace.
- a flange 14 extends around the outer surface of the insert 10 above the lower cylindrical projection 12. When the lower cylindrical projection 12 of the insert 10 is inserted into the feed opening, the flange 14 rests on the top surface of the furnace surrounding the feed opening. This acts to position the insert 10 relative to the feed opening. Other arrangements may be used to position the insert relative to the feed opening.
- a generally cylindrical body portion 16 extends above the flange 14.
- the cylindrical body portion has two tubular openings 18, 20 (shown on Figure 3 ).
- Openings 18, 20 can be connected to a source of pressurised gas.
- Openings 18, 20 may be connected to supply pipes or lines that provide pressurised gas to the insert 10.
- the source of pressurised gas may be any convenient source.
- the pressurised gas may be provided by a blower or a compressor.
- the insert 10 comprises an outer part 22 (shown in figure 7 ) and an inner part 24 (shown in figure 6 ).
- the outer part includes the lower cylindrical projection 12, the flange 14, the cylindrical body portion 16 and the tubular openings 18, 20.
- the inner surface 26 of outer part 22 of insert 10 forms a generally cylindrical surface.
- a plurality of keyways 28 are formed to extend upwardly from the lower edge of outer part 22 of insert 10.
- the keyways 28 are formed in three groups that are spaced around the periphery of the lower edge of the outer part 22.
- the insert 10 also includes an inner part 24.
- Inner part 24 fits inside outer part 22 to form the insert 10.
- the inner part 24 has a cylindrical lower region 30.
- Spaced projections 32 are formed on the cylindrical lower region 30. Projections 32 are sized and positioned so that they can fit into the keyways 28 formed on the lower edge of the outer part 22 of the insert 10. In this manner, the outer part 22 and the inner part 24 can be keyed together so that they are retained in position relative to each other (see figure 8 ).
- Other arrangements to position the inner part 24 relative to the outer part 22 may also be used. Indeed, the inner part 24 and the outer part 22 could be permanently affixed to each other, such as by welding.
- the inner part 24 includes a central waisted region (see figure 6 ).
- the central waisted region includes an upper part 36 that extends inwardly from an upper periphery 38 and a part that extends downwardly and outwardly along region 40 (see figure 5 ).
- the transition from upper region 36 to region 40 occurs via a smoothly curved surface 42.
- the inner part 24 of arrangement 10 forms a venturi or a Coanda surface that is defined by the inner surfaces of regions 36, 40 and 42.
- FIG. 5 shows a cross sectional view of the assembled insert 10.
- a plenum chamber 44 is defined between the outer surface of central waisted region 34 of the inner part 24 and the inner surface of cylindrical body portion 16 of outer part 22.
- the upper periphery 38 ( figure 6 ) of inner part 24 is spaced from an inwardly directed surface 46 of outer part 22.
- the space that is defined between forms an open annular passage 48.
- Open annular passage 48 is in fluid communication with the plenum chamber 44 which, in turn, is in fluid communication with a source of compressed gas via tubular openings 18, 20.
- pressurised gas is provided via tubular openings 18, 20 to the plenum chamber 44.
- the compressed gas exits the plenum chamber 44 via the open annular passage 48.
- Due to the shape of the inner surface of the inner part 24, the gas flowing out of the open annular passage 48 tends to follow the inner surface of the inner part 22, which causes the gas flowing out of the open annular passage 48 to flow downwardly and into the furnace.
- This also acts to entrain gas from an environment external to the furnace, which results in a total flow of gas into the furnace that is significantly higher than the flow of gas arising from the gas leaving the open annular passage 48.
- the total flow of gas into the furnace is sufficient to prevent gas from the furnace exiting through the feed opening of the furnace.
- the external gas that is entrained from the external environment largely or completely passes through the gap that exists between the external surface of the frusto conical body 52 of the chute 50 and the upper part of the insert that extends inwardly and downwardly from the upper periphery 58 of the insert.
- Feed chute 50 comprises a frusto conical hollow body 52 having a plurality of support feet 54 mounted thereto.
- Support feet 54 include recesses 56 that are shaped to snugly fit onto the upper periphery 58 of the outer part 22 of insert 10.
- the feed chute may be permanently joined to the insert.
- the feed chute may be omitted.
- Figure 9 shows a schematic cross-sectional view of a top entry submerged lance furnace 60.
- the furnace 60 includes a lower portion 62 that contains a bath of molten material.
- the top of the furnace includes a feed opening 64 and an exhaust opening 66. Exhaust gases are removed from the furnace through exhaust opening 66. Exhaust opening 66 is located in a part of an exhaust region 68 of the furnace.
- the insert 10 is inserted into the feed opening 64. Once inserted, the insert 10 effectively forms the feed opening to the furnace.
- Figure 10 shows a schematic cross-sectional view of another top entry submerged lance furnace.
- the furnace 70 shown in in figure 10 has a number of features that are in common with the furnace 60 shown in figure 9 and, for convenience, like features are denoted by the same reference numerals as used in figure 10 .
- the furnace 70 of figure 10 differs from the furnace 60 of figure 9 is that the furnace 70 of figure 10 includes a lance opening 72 having a lance 74 extending therethrough into the furnace.
- the roof of the furnace 70 that is located away from the exhaust region of the furnace is provided with two separate openings, being the feed opening 64 and the lance opening 72.
- Feed opening 64 is fitted with an arrangement 10 in accordance with the present invention to prevent egress of furnace contents from the feed opening 64.
- lance opening 74 is also fitted with an arrangement 10 in accordance with the present invention to prevent egress of furnace contents from the lance opening 74.
- the arrangement 10 is effective to prevent egress of furnace contents from the lance opening 72 even when the lance 74 extends through the lance opening 72.
- exhaust gas is removed from the furnace through exhaust opening 66, which causes the exhaust gas to flow into exhaust ducting/piping 76 to thereby remove the exhaust gas from the furnace.
- the exhaust ducting/piping may be provided with conventional exhaust gas cleaning systems, the nature of which will be well understood by persons skilled in the art.
- Figure 11 shows a schematic cross-sectional view of another top entry submerged lance furnace.
- the furnace 80 shown in figure 11 is very similar to the furnace 70 shown in figure 10 in that it includes a feed opening 64 and a lance opening 72.
- Other features that are common between the furnace 80 of figure 11 in the furnace 70 of figure 10 are denoted by like reference numerals.
- the furnace 80 of figure 11 differs from the furnace of figure 10 is that it is only the feed opening 64 of the furnace 80 that is fitted with an arrangement 10 in accordance with the present invention.
- the lance opening 72 of the furnace 80 is simply provided with conventional extraction systems (not shown) so that any dust or furnace contents exiting the furnace through lance opening 72 are captured by the extraction systems and removed from the immediate location of the furnace. It will be appreciated that egress of dust or other furnace contents through feed opening 64 is prevented by operation of the arrangement 10 in accordance with the present invention.
- the exhaust opening 66 is connected to exhaust ducting/piping 76 to thereby remove exhaust gas from the furnace.
- Figure 12 shows the results of modelling conducted on a top entry submerged lance furnace that is essentially similar to the furnace 70 shown in figure 10 .
- the furnace shown in figure 12 has a feed opening 64 and a lance opening 72. Exhaust piping 76 is also shown.
- the feed opening 64 and the lance opening 72 are both provided with an arrangement 10 in accordance with the present invention for preventing or minimising egress of furnace contents therefrom.
- the modelling shown in figure 12 shows gas flows when no flow of air is provided to the arrangements 10 fitted into feed opening 64 and lance opening 72. As can be shown from figure 12 , significant plumes of gas exit the furnace from both the feed opening 64 and the lance opening 72.
- Figure 13 shows modelling of the furnace shown in figure 12 but with the devices 10 fitted to the feed opening 64 and the lance opening 72, respectively, both being turned on so that air is flowing out of the respective passageways extending around the feed opening 64 and the lance opening 72 and into the furnace.
- the modelling shows that there is no egress of furnace contents through the feed opening 64 and the lance opening 72 when the devices 10 in the feed opening 64 and the lance opening 72 are operating. The only gas exiting the furnace is exiting through the exhaust piping 76.
- operation of the arrangements 10 in accordance with the present invention has prevented egress of furnace contents through the feed opening 64 and lance opening 72.
- the present inventors have conducted CFD modelling of a top entry submerged lance furnace having an insert 10 present in the feed opening thereof. Absent the insert 10, or when the insert 10 is not operating, that modelling shows that some of the gaseous contents of the furnace were emitted through the feed opening of the furnace. As the gaseous contents of the furnace may include corrosive gases or toxic gases, it is undesirable that these gases be emitted through the feed opening, as operating personnel may be required to be in close physical proximity to the feed opening.
- the computer modelling conducted by the present inventors has shown that placing the insert 10 in the feed opening and operating the insert 10 can prevent the egress of furnace gases from the furnace via the feed opening.
- the total flow of gas into the furnace through the feed opening can be controlled by controlling the flow rate of gas leaving the annular passage in the insert.
- the flow rate of gas may be controlled by controlling the pressure of the gas that is provided to the plenum chamber.
- the amount of gas required to flow in through the feed opening to prevent furnace gases from leaving via the feed opening can also be controlled by controlling the furnace pressure and/or controlling the flow rate of furnace gas leaving through the exhaust opening.
- the gas that is supplied to the plenum chamber may comprise air.
- the gas that is supplied to the plenum chamber may comprise recycled furnace gas, recycled air, heated air, or even one or more gases required to promote reactions within the furnace.
- Gases that may take part in reactions within the furnace include oxygen, carbon monoxide, natural gas, other fuel gases or the like.
- the temperature of the gas supplied to the plenum chamber may be controlled to ensure that temperature conditions within the furnace are not unduly upset.
- the embodiment shown in the attached drawings includes two diametrically opposed tubular inlets into the plenum chamber. It will be appreciated that a different number of inlets to the plenum chamber may be used to provide pressurised gas to the plenum chamber. For example, for larger diameter inserts, more than two openings into the plenum chamber may be provided. Ideally, the plurality of openings to the plenum chamber will be equi-spaced around the periphery of the plenum chamber.
- the opening 48 through which the pressurised gas flows from the plenum chamber should be sized sufficiently large such that it is unlikely to be blocked by stray particulate material that is being fed to the furnace whilst also being small enough to ensure that a high gas velocity is obtained in the gas leaving that passage.
- the present invention has industrial applicability in respect of any vessel that has a first opening and at least one other opening. It will be appreciated that the gas that is injected into the vessel via the first opening must leave the vessel via another opening in order to enable the present invention to successfully operate.
- the Coanda effect is the tendency of a jet of fluid, such as a jet of gas, to be attracted to and to flow along a nearby surface.
- a jet of fluid such as a jet of gas
- the pressurised gas leaving the annular passage tends to follow the surface of the waisted portion of the inner part of the insert.
- the waisted portion forms a Coanda surface (which has several characteristics of a venturi) and the pressurised gas leaving the open annular passageway flows inwardly and then downwardly and along the inner surface of the waisted portion.
- the arrangement shown in the attached drawings may be retrofitted to existing furnaces.
- the arrangement includes the outer part 22 and the inner part 24.
- the outer part 22 and the inner part 24 may be permanently joined together, such as by welding.
- the arrangement shown the attached drawings is advantageous in that the outer part 22 and the inner part 24 may be removed from the furnace and separated from each other for cleaning or for clearing blockages. It will also be appreciated that a similar arrangement may be constructed as part of the feed opening of the furnace rather than being provided as a retrofit insert.
- the present invention may be used in any application where a vessel is provided with two or more openings and it is desired to prevent flow of gas from the vessel out through one of those openings.
- the present invention may be used in other types of furnaces, in high-temperature vessels, in storage vessels, such as storage silos for granular material or particulate, and the like.
- the present invention can be used in any application where it is desired to prevent the egress of gas, dust or fine particulate material from an opening of a vessel.
- the present invention is also suitable for use with vessels where the feed material is fed to the vessel through the first opening in a continuous manner.
- the material is fed to the vessel in an intermittent manner, it may be possible to increase the flow of gas through the open passage when no feed material is being fed to the vessel in order to entrain sufficient gas from an external environment to prevent egress of gas through the first opening.
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- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- General Engineering & Computer Science (AREA)
- Environmental & Geological Engineering (AREA)
- Waste-Gas Treatment And Other Accessory Devices For Furnaces (AREA)
- Vertical, Hearth, Or Arc Furnaces (AREA)
- Filling Or Discharging Of Gas Storage Vessels (AREA)
- Furnace Details (AREA)
- Manipulator (AREA)
Description
- The present invention relates to a method and an arrangement for preventing egress of gas from a first opening of the vessel.
- Furnaces are used in a wide range of metallurgical processes. Many furnaces include a first opening through which feed materials can be fed to the furnace and a second opening through which an exhaust gas or flue gas can be removed from the furnace, as well as other openings for final products and by-products to be recovered. Typical materials that are fed to furnaces in metallurgical processes include concentrates or ores, fluxes, fuel such as coal or coke, and air or oxygen. The feed materials undergo reaction with the contents of the furnace to produce desirable metallurgical products. Exhaust gases are produced during the process and the exhaust gases are removed through the exhaust outlet of the furnace. Dust generated from the feed material descending in the furnace can also find its way passing with the exhaust gases and removed through the exhaust outlet.
- One type of furnace that is finding increased use in metallurgical processing is the top entry submerged lance furnace. Top entry submerged lance furnaces comprised a furnace body or vessel. A feed opening is provided in the top of the furnace. An exhaust opening is provided laterally of the feed opening. Furnace feed material is passed to the furnace through the feed opening. A lance is inserted through a separate opening into the furnace. A gas and, optionally, a fuel, are passed through the lance into the furnace. The tip of the lance extends into the molten contents of the furnace. Injection of gas through the lance agitates the molten contents of the furnace and promotes the metallurgical reactions. The exhaust gases produced by the metallurgical process exit the furnace through the exhaust opening. One type of top entry submerged lance furnace is sole by the present applicant under the ISASMELT™ trade mark.
- Operating personnel are frequently required to be physically present close to the feed opening of the furnace. Therefore, it is desirable that gases or dust from the furnace do not exit the furnace through the feed opening. However, in practice, it can be difficult to prevent furnace gases or dust exiting through the feed opening.
US 3 198 623 A describes a gas seal at the top of a blast furnace which enables continuous charging through the furnace top. A blower is controlled to provide clean gas to an annular opening and an open port so that the velocity pressure of the downwardly directed gas at the blast furnace opening is substantially at least equal to the static pressure of the gas within the upper section of the blast furnace, to establish a gas seal in the form of a clean gas-dirty gas interface. - Furthermore,
EP 1 055 092 A1 describes a seal for a high-temperature treatment vessel such as a basic oxygen furnace used for producing steel. The seal comprises a plug seal having a number of mechanical seals, with the mechanical seals defining a space through which a lance can be inserted. A plurality of aspirating nozzles have intakes in communication with a plenum in which the high-velocity gas produces a low pressure to develop a relatively negative pressure in the plenum and thereby capture in the plenum any gas escaping past the mechanical seal. - It will be clearly understood that, if a prior art publication is referred to herein, this reference does not constitute an admission that the publication forms part of the common general knowledge in the art in Australia or in any other country.
- The present invention provides for a method for preventing egress of gas from an opening in a vessel as defined by claim 1 and to an arrangement for preventing egress of gas from an opening in a vessel as defined by claim 3 so as to at least partially overcome at least one of the abovementioned disadvantages or provide the consumer with a useful or commercial choice.
- In one aspect, the present invention provides a method for preventing egress of gas from a first opening of a vessel, the vessel including at least one other opening through which the gas can leave the vessel, the method comprising supplying a flow of gas to an open passage extending around the first opening and causing the flow of gas leaving the open passage to flow towards and into the vessel, characterized in that a surface of the first opening between the open passage and the vessel has a shape, when moving in a direction towards the vessel, that extends inwardly towards the centre of the first opening and then outwardly away from the centre of the first opening, the surface of the first opening between the open passage and the vessel comprising a Coanda surface whereby a gas from an environment external to the vessel is caused to be drawn into the vessel, wherein a total flow of gas into the first opening substantially prevents gas from leaving the vessel through the first opening.
- In a second aspect, the present invention provides an arrangement for preventing egress of a gas from a first opening of a vessel, the vessel including at least one other opening through which the gas can leave the vessel, the arrangement comprising an open passage extending substantially around the first opening, the open passage receiving a flow of gas such that the flow of gas leaves the open passage and flows towards and into the vessel to cause a gas from the environment external to the vessel to be drawn into the vessel, characterized in that a surface of the first opening between the open passage and the vessel has a shape, when moving in a direction towards the vessel, that extends inwardly toward the centre of the first opening and then outwardly away from the centre of the first opening, the surface of the first opening between the open passage and the vessel comprising a Coanda surface.
- The open passage extends around the first opening. Throughout this specification, the term "open passage extending substantially around the first opening" should be considered to include a single passage extending around the first opening, a single passage extending almost completely around the first opening and a plurality of separate passages having ends that are closely spaced to an end of an adjacent passage such that gas leaving the separate passages causes an inflow of gas that flows inwardly across the circumferential or peripheral extent of the first opening.
- In one embodiment, the first opening comprises a generally circular opening. The open passage may comprise an annular open passage extending around the first opening.
- In one embodiment, the open passage extends around an inner surface of the first opening.
- The surface of the first opening between the open passage and the vessel is shaped to promote the flow of gas leaving the open passage to flow towards and into the vessel. The surface of the first opening between the open passage and the vessel has a shape, when moving in a direction towards the vessel, that extends inwardly towards the centre of the first opening and then outwardly away from the centre of the first opening.
- In one embodiment, the surface of the first opening between the open passage and the vessel may form a venturi.
- The surface of the first opening between the open passage and the vessel comprises a Coanda surface.
- In some embodiments, the open passage is in fluid communication with a plenum chamber. The plenum chamber may extend around the first opening. The plenum chamber receives pressurised gas. The pressurised gas flows from the plenum chamber through the open passage and into the vessel.
- The plenum chamber may have at least one, preferably two or more, inlets for receiving pressurised gas. In embodiments where the plenum chamber has two or more inlets for receiving pressurised gas, the two or more inlets are preferably equi-spaced around the plenum chamber.
- The vessel may comprise any vessel that has a first opening and at least one other opening through which gas can leave the vessel. The vessel may comprise a process vessel or a storage vessel. The vessel may comprise a high-temperature vessel. The vessel may comprise a furnace. The vessel may comprise a top entry submerged lance furnace.
- The arrangement may further comprise a feed chute for feeding material to the vessel. The material that is fed to the vessel may comprise particulate material. The feed chute may also allow a lance to be inserted therethrough to enable the lance to be inserted into the vessel.
- The particulate material that is fed to the vessel may be selected from concentrate, sand, rocks, aggregates, coal, coke, industrial minerals, limestone, cement, fluxes, man-made materials such as super phosphate, fertilizers, pharmaceuticals, foodstuffs, chemicals, and other natural materials or natural materials such as cereals such as wheat, barley, rice, oats, corn etc.
- In some embodiments, the arrangement of the present invention comprises an insert that is inserted into the first opening of the vessel. When the insert is inserted into the first opening, the inner surface of the insert effectively defines the first opening of the furnace.
- In one embodiment, the insert includes a portion extending into the first opening of the vessel and another portion that defines the open passage extending around an inner periphery of the insert. The insert may also define the plenum chamber and the at least one inlet for receiving pressurised gas. The insert may comprise a flange that comes into contact with an outer surface around the first opening of the vessel to thereby position the insert relative to the first opening of the vessel.
- The arrangement in accordance with the present invention may be used to prevent egress of furnace contents from a number of furnace openings. For example, if a furnace is provided with two openings (such as a feed opening and a separate lance opening), each of the openings may be provided with their own arrangement in accordance with the present invention. In this manner, the arrangement provided in each opening may prevent egress of furnace contents from each opening. The skilled person will appreciate that the furnace will also include an exhaust system and exhaust gases will be removed from the furnace through the exhaust system. The exhaust system will typically include an exhaust opening and appropriate ducting/pipework. It is also possible that an arrangement in accordance with the present invention may be provided to only one of the plurality of openings to the furnace. Other openings of the furnace may be provided with conventional extraction equipment to prevent furnace contents coming into contact with operators. For example, the feed opening may be provided with an arrangement in accordance with the invention and the lance opening may be provided with conventional extraction equipment.
- The furnace may have even more openings. The skilled person may choose to have only one of the openings to the furnace fitted with the arrangement in accordance with the present invention for preventing egress of furnace contents from that one opening, with other openings to the furnace thing fitted with conventional extraction equipment. Alternatively, the skilled person may choose to have two or more, or even all of the openings to the furnace (excluding the exhaust opening) fitted with the arrangement of the present invention for preventing egress of furnace contents from those openings.
- Various embodiments of the invention will be described with reference to the following drawings, in which:
-
Figure 1 shows a perspective view from above of an arrangement in accordance with one embodiment of the present invention; -
Figure 2 shows a perspective view from below of the arrangement shown infigure 1 ; -
Figure 3 shows a side view of the arrangement shown infigure 1 ; -
Figure 4 shows a plan view of the arrangement shown infigure 1 ; -
Figure 5 shows a cross sectional view taken along section lines H-H shown infigure 4 ; -
Figure 6 shows a perspective view of an inner part of the arrangement shown infigure 1 ; -
Figure 7 shows a perspective view of an outer part of the arrangement shown infigure 1 ; -
Figure 8 shows a plan view, partly in cross-section, of the arrangement shown infigure 1 ; -
Figure 9 shows a schematic view of the arrangement shown infigure 1 being mounted to a feed opening of a top entry submerged lance furnace; -
Figure 10 shows a schematic view of one arrangement as shown infigure 1 being mounted to a feed opening of a top entry submerged lance furnace and another arrangement as shown infigure 1 being mounted to a lance opening of the furnace; -
Figure 11 shows a schematic view of one arrangement as shown infigure 1 being mounted to a feed opening of a top entry submerged lance furnace and a lance opening of the furnace being provided with a conventional extraction system; -
Figure 12 shows the results of modelling conducted on a top entry submerged lance furnace that is essentially similar to the furnace shown infigure 10 , but with thearrangements 10 fitted to the feed opening and lance opening not being in operation; and -
Figure 13 shows the results of modelling conducted on the top entry submerged lance furnace shown infigure 12 , but with thearrangements 10 fitted to the feed opening and lance opening being in operation. - The person skilled in the art will appreciate that the attached drawings have been provided for the purposes of illustrating preferred embodiments of the present invention. Therefore, it will be understood that the present invention should not be considered to be limited solely to the features as shown in the attached drawings.
- The arrangement for preventing egress of gas from a vessel as shown in the attached drawings is designed to be used in the feed opening of a top entry submerged lance furnace. The feed opening of a top entry submerged lance furnace is in the top surface of the furnace. In this embodiment, pressurised gas passes through an annular open passage extending around an insert arrangement that, when inserted into the feed opening, effectively forms the feed opening of the furnace. The gas leaving the annular passageway moves downward into the vessel and causes gas from the environment external to the vessel to also flow into the vessel. The gas leaving the annular passage comprises a gas stream having a relatively low (volumetric) flow rate but having a relatively high speed. The combination of the injected gas and the entrained gas from the external atmosphere causes a total flow of gas into the feed opening of the furnace that is sufficient to prevent gas within the furnace from exiting the furnace through the feed opening.
- The
arrangement 10 shown in the attached figures is designed as an insert that is inserted into the feed opening of a furnace. The feed opening is typically a generally circular or oval inlet or port. Theinsert 10 includes a lowercylindrical projection 12 that is sized to fit snugly into the feed opening of the furnace. Aflange 14 extends around the outer surface of theinsert 10 above the lowercylindrical projection 12. When the lowercylindrical projection 12 of theinsert 10 is inserted into the feed opening, theflange 14 rests on the top surface of the furnace surrounding the feed opening. This acts to position theinsert 10 relative to the feed opening. Other arrangements may be used to position the insert relative to the feed opening. - A generally
cylindrical body portion 16 extends above theflange 14. The cylindrical body portion has twotubular openings 18, 20 (shown onFigure 3 ). 18, 20 can be connected to a source of pressurised gas.Openings 18, 20 may be connected to supply pipes or lines that provide pressurised gas to theOpenings insert 10. The source of pressurised gas may be any convenient source. The pressurised gas may be provided by a blower or a compressor. - The
insert 10 comprises an outer part 22 (shown infigure 7 ) and an inner part 24 (shown infigure 6 ). The outer part includes the lowercylindrical projection 12, theflange 14, thecylindrical body portion 16 and the 18, 20. As can be seen fromtubular openings figure 7 , theinner surface 26 ofouter part 22 ofinsert 10 forms a generally cylindrical surface. A plurality ofkeyways 28 are formed to extend upwardly from the lower edge ofouter part 22 ofinsert 10. Thekeyways 28 are formed in three groups that are spaced around the periphery of the lower edge of theouter part 22. - The
insert 10 also includes aninner part 24.Inner part 24 fits insideouter part 22 to form theinsert 10. Theinner part 24 has a cylindricallower region 30. Spacedprojections 32 are formed on the cylindricallower region 30.Projections 32 are sized and positioned so that they can fit into thekeyways 28 formed on the lower edge of theouter part 22 of theinsert 10. In this manner, theouter part 22 and theinner part 24 can be keyed together so that they are retained in position relative to each other (seefigure 8 ). Other arrangements to position theinner part 24 relative to theouter part 22 may also be used. Indeed, theinner part 24 and theouter part 22 could be permanently affixed to each other, such as by welding. As the cylindricallower region 30 ofinner part 24 comes into contact with the cylindricalinner surface 26 of theouter part 22 of theinsert 10, a relatively sound seal can be achieved between theouter part 22 in theinner part 24. If desired, additional seals, such as O-rings or other seals, may be located between theinner part 24 and theouter part 22 of theinsert 10. - The
inner part 24 includes a central waisted region (seefigure 6 ). The central waisted region includes anupper part 36 that extends inwardly from anupper periphery 38 and a part that extends downwardly and outwardly along region 40 (seefigure 5 ). The transition fromupper region 36 toregion 40 occurs via a smoothlycurved surface 42. In this manner, theinner part 24 ofarrangement 10 forms a venturi or a Coanda surface that is defined by the inner surfaces of 36, 40 and 42.regions -
Figure 5 shows a cross sectional view of the assembledinsert 10. Aplenum chamber 44 is defined between the outer surface of centralwaisted region 34 of theinner part 24 and the inner surface ofcylindrical body portion 16 ofouter part 22. As can be seen fromfigure 5 , the upper periphery 38 (figure 6 ) ofinner part 24 is spaced from an inwardly directed surface 46 ofouter part 22. The space that is defined between forms an openannular passage 48. Openannular passage 48 is in fluid communication with theplenum chamber 44 which, in turn, is in fluid communication with a source of compressed gas via 18, 20.tubular openings - In use of the
arrangement 10, pressurised gas is provided via 18, 20 to thetubular openings plenum chamber 44. The compressed gas exits theplenum chamber 44 via the openannular passage 48. Due to the shape of the inner surface of theinner part 24, the gas flowing out of the openannular passage 48 tends to follow the inner surface of theinner part 22, which causes the gas flowing out of the openannular passage 48 to flow downwardly and into the furnace. This also acts to entrain gas from an environment external to the furnace, which results in a total flow of gas into the furnace that is significantly higher than the flow of gas arising from the gas leaving the openannular passage 48. The total flow of gas into the furnace is sufficient to prevent gas from the furnace exiting through the feed opening of the furnace. In the embodiment shown in the attached drawings, the external gas that is entrained from the external environment largely or completely passes through the gap that exists between the external surface of the frustoconical body 52 of thechute 50 and the upper part of the insert that extends inwardly and downwardly from theupper periphery 58 of the insert. - It will be appreciated that the gas that flows into the furnace through the feed opening will ultimately exit the furnace through the exhaust opening of the furnace.
- In order to enable feed materials to be fed to the furnace whilst minimising the risk that the feed materials will block the open
annular passage 48, thearrangement 10 may also be provided with afeed chute 50.Feed chute 50 comprises a frusto conicalhollow body 52 having a plurality ofsupport feet 54 mounted thereto.Support feet 54 includerecesses 56 that are shaped to snugly fit onto theupper periphery 58 of theouter part 22 ofinsert 10. In other embodiments, the feed chute may be permanently joined to the insert. In another embodiment, the feed chute may be omitted. -
Figure 9 shows a schematic cross-sectional view of a top entry submergedlance furnace 60. Thefurnace 60 includes alower portion 62 that contains a bath of molten material. The top of the furnace includes afeed opening 64 and anexhaust opening 66. Exhaust gases are removed from the furnace throughexhaust opening 66.Exhaust opening 66 is located in a part of anexhaust region 68 of the furnace. Theinsert 10 is inserted into thefeed opening 64. Once inserted, theinsert 10 effectively forms the feed opening to the furnace. -
Figure 10 shows a schematic cross-sectional view of another top entry submerged lance furnace. The furnace 70 shown in infigure 10 has a number of features that are in common with thefurnace 60 shown infigure 9 and, for convenience, like features are denoted by the same reference numerals as used infigure 10 . Where the furnace 70 offigure 10 differs from thefurnace 60 offigure 9 is that the furnace 70 offigure 10 includes alance opening 72 having alance 74 extending therethrough into the furnace. Thus, the roof of the furnace 70 that is located away from the exhaust region of the furnace is provided with two separate openings, being thefeed opening 64 and thelance opening 72. -
Feed opening 64 is fitted with anarrangement 10 in accordance with the present invention to prevent egress of furnace contents from thefeed opening 64. Similarly,lance opening 74 is also fitted with anarrangement 10 in accordance with the present invention to prevent egress of furnace contents from thelance opening 74. In this regard, thearrangement 10 is effective to prevent egress of furnace contents from thelance opening 72 even when thelance 74 extends through thelance opening 72. It will be appreciated that exhaust gas is removed from the furnace throughexhaust opening 66, which causes the exhaust gas to flow into exhaust ducting/piping 76 to thereby remove the exhaust gas from the furnace. The exhaust ducting/piping may be provided with conventional exhaust gas cleaning systems, the nature of which will be well understood by persons skilled in the art. -
Figure 11 shows a schematic cross-sectional view of another top entry submerged lance furnace. The furnace 80 shown infigure 11 is very similar to the furnace 70 shown infigure 10 in that it includes afeed opening 64 and alance opening 72. Other features that are common between the furnace 80 offigure 11 in the furnace 70 offigure 10 are denoted by like reference numerals. Where the furnace 80 offigure 11 differs from the furnace offigure 10 is that it is only thefeed opening 64 of the furnace 80 that is fitted with anarrangement 10 in accordance with the present invention. Thelance opening 72 of the furnace 80 is simply provided with conventional extraction systems (not shown) so that any dust or furnace contents exiting the furnace throughlance opening 72 are captured by the extraction systems and removed from the immediate location of the furnace. It will be appreciated that egress of dust or other furnace contents throughfeed opening 64 is prevented by operation of thearrangement 10 in accordance with the present invention. Theexhaust opening 66 is connected to exhaust ducting/piping 76 to thereby remove exhaust gas from the furnace. -
Figure 12 shows the results of modelling conducted on a top entry submerged lance furnace that is essentially similar to the furnace 70 shown infigure 10 . The furnace shown infigure 12 has afeed opening 64 and alance opening 72. Exhaust piping 76 is also shown. Thefeed opening 64 and thelance opening 72 are both provided with anarrangement 10 in accordance with the present invention for preventing or minimising egress of furnace contents therefrom. The modelling shown infigure 12 shows gas flows when no flow of air is provided to thearrangements 10 fitted intofeed opening 64 andlance opening 72. As can be shown fromfigure 12 , significant plumes of gas exit the furnace from both thefeed opening 64 and thelance opening 72. -
Figure 13 shows modelling of the furnace shown infigure 12 but with thedevices 10 fitted to thefeed opening 64 and thelance opening 72, respectively, both being turned on so that air is flowing out of the respective passageways extending around thefeed opening 64 and thelance opening 72 and into the furnace. As can be seen fromfigure 13 , there is a significant inward flow of gas into the furnace through both thefeed opening 64 and thelance opening 72. The modelling shows that there is no egress of furnace contents through thefeed opening 64 and thelance opening 72 when thedevices 10 in thefeed opening 64 and thelance opening 72 are operating. The only gas exiting the furnace is exiting through theexhaust piping 76. Thus, operation of thearrangements 10 in accordance with the present invention has prevented egress of furnace contents through thefeed opening 64 andlance opening 72. - As shown in
figures 12 and13 , the present inventors have conducted CFD modelling of a top entry submerged lance furnace having aninsert 10 present in the feed opening thereof. Absent theinsert 10, or when theinsert 10 is not operating, that modelling shows that some of the gaseous contents of the furnace were emitted through the feed opening of the furnace. As the gaseous contents of the furnace may include corrosive gases or toxic gases, it is undesirable that these gases be emitted through the feed opening, as operating personnel may be required to be in close physical proximity to the feed opening. The computer modelling conducted by the present inventors has shown that placing theinsert 10 in the feed opening and operating theinsert 10 can prevent the egress of furnace gases from the furnace via the feed opening. - The skilled person will appreciate that the total flow of gas into the furnace through the feed opening can be controlled by controlling the flow rate of gas leaving the annular passage in the insert. The flow rate of gas may be controlled by controlling the pressure of the gas that is provided to the plenum chamber.
- The amount of gas required to flow in through the feed opening to prevent furnace gases from leaving via the feed opening can also be controlled by controlling the furnace pressure and/or controlling the flow rate of furnace gas leaving through the exhaust opening.
- The gas that is supplied to the plenum chamber may comprise air. Alternatively the gas that is supplied to the plenum chamber may comprise recycled furnace gas, recycled air, heated air, or even one or more gases required to promote reactions within the furnace. Gases that may take part in reactions within the furnace include oxygen, carbon monoxide, natural gas, other fuel gases or the like.
- The temperature of the gas supplied to the plenum chamber may be controlled to ensure that temperature conditions within the furnace are not unduly upset.
- The embodiment shown in the attached drawings includes two diametrically opposed tubular inlets into the plenum chamber. It will be appreciated that a different number of inlets to the plenum chamber may be used to provide pressurised gas to the plenum chamber. For example, for larger diameter inserts, more than two openings into the plenum chamber may be provided. Ideally, the plurality of openings to the plenum chamber will be equi-spaced around the periphery of the plenum chamber.
- The
opening 48 through which the pressurised gas flows from the plenum chamber should be sized sufficiently large such that it is unlikely to be blocked by stray particulate material that is being fed to the furnace whilst also being small enough to ensure that a high gas velocity is obtained in the gas leaving that passage. - The present invention has industrial applicability in respect of any vessel that has a first opening and at least one other opening. It will be appreciated that the gas that is injected into the vessel via the first opening must leave the vessel via another opening in order to enable the present invention to successfully operate.
- Without wishing to be bound by theory, the present inventors believe that the present invention takes advantage of the Coanda effect. The Coanda effect is the tendency of a jet of fluid, such as a jet of gas, to be attracted to and to flow along a nearby surface. By passing pressurised gas through the open annular passage, the pressurised gas leaving the annular passage tends to follow the surface of the waisted portion of the inner part of the insert. The waisted portion forms a Coanda surface (which has several characteristics of a venturi) and the pressurised gas leaving the open annular passageway flows inwardly and then downwardly and along the inner surface of the waisted portion. This establishes an inwardly directed flow of gas that has a relatively high speed at a relatively low flow rate (that is, a relatively low volumetric flow rate). This causes external gas to also be drawn into the waisted portion of the insert and thereafter into the furnace. The total flow of gas through the insert into the furnace effectively forms an air curtain that acts to prevent furnace gases from flowing out through the feed opening.
- The arrangement shown in the attached drawings may be retrofitted to existing furnaces. The arrangement includes the
outer part 22 and theinner part 24. In other embodiments, theouter part 22 and theinner part 24 may be permanently joined together, such as by welding. However, the arrangement shown the attached drawings is advantageous in that theouter part 22 and theinner part 24 may be removed from the furnace and separated from each other for cleaning or for clearing blockages. It will also be appreciated that a similar arrangement may be constructed as part of the feed opening of the furnace rather than being provided as a retrofit insert. - Although the preferred embodiment of the present invention has been described with reference to its use in conjunction with a feed opening of a top entry submerged lance furnace, it will be appreciated that the present invention may be used in any application where a vessel is provided with two or more openings and it is desired to prevent flow of gas from the vessel out through one of those openings. The present invention may be used in other types of furnaces, in high-temperature vessels, in storage vessels, such as storage silos for granular material or particulate, and the like. The present invention can be used in any application where it is desired to prevent the egress of gas, dust or fine particulate material from an opening of a vessel.
- The present invention is also suitable for use with vessels where the feed material is fed to the vessel through the first opening in a continuous manner. In applications where the material is fed to the vessel in an intermittent manner, it may be possible to increase the flow of gas through the open passage when no feed material is being fed to the vessel in order to entrain sufficient gas from an external environment to prevent egress of gas through the first opening. Alternatively, it may possible to simply close off the first opening using a closure when no feed material is being fed to the vessel.
Claims (14)
- A method for preventing egress of gas from a first opening (64) of a vessel(60), the vessel including at least one other opening (66) through which gas can leave the vessel(60), the method comprising supplying a flow of gas to an open passage (48) extending around the first opening (64) and causing the flow of gas leaving the open passage (48) to flow towards and into the vessel (60), characterized in that that a surface (40) of the first opening between the open passage (48) and the vessel (60) has a shape, when moving in a direction towards the vessel, that extends inwardly towards the centre of the first opening and then outwardly away from the centre of the first opening, the surface of the first opening between the open passage (48) and the vessel (60) comprising a Coanda surface whereby a gas from an environment external to the vessel (60) is caused to be drawn into the vessel (60), wherein a total flow of gas into the first opening (64) prevents gas from leaving the vessel through the first opening.
- A method as claimed in claim 1 wherein the flow of gas leaving the open passage (48) entrains gas from the environment external to the furnace, which results in a total flow of gas into the furnace that is significantly higher than the flow of gas arising from the gas leaving the open annular passage (48).
- An arrangement for preventing egress of a gas from a first opening (64) of a vessel (60), the vessel (60) including at least one other opening (66) through which the gas can leave the vessel, wherein the arrangement comprises an open passage (48) extending around the first opening (64), the open passage (48) receiving a flow of gas such that the flow of gas leaves the open passage (48) and flows towards and into the vessel (60) to cause a gas from the environment external to the vessel to be drawn into the vessel (60), characterised in that a surface (40) of the first opening between the open passage (48) and the vessel (60) has a shape, when moving in a direction towards the vessel, that extends inwardly towards the centre of the first opening and then outwardly away from the centre of the first opening, the surface of the first opening between the open passage (48) and the vessel (60) comprising a Coanda surface.
- An arrangement for preventing egress of a gas from a first opening of a vessel as claimed in claim 3 wherein the first opening (64) comprises a circular opening and the open passage (48) comprises an annular open passage extending around the first opening (64).
- An arrangement for preventing egress of a gas from a first opening of a vessel as claimed in any one of claims 3 or 4 wherein the open passage extends around an inner surface of the first opening.
- An arrangement for preventing egress of a gas from a first opening of a vessel as claimed in any one of claims 3 to 5 wherein the surface (40) of the first opening between the open passage (48) and the vessel (60) forms a venturi.
- An arrangement for preventing egress of a gas from a first opening of a vessel as claimed in any one of claims 3 to 6 wherein the open passage (48) is in fluid communication with a plenum chamber (44).
- An arrangement for preventing egress of a gas from a first opening of a vessel as claimed in claim 7 wherein the plenum chamber extends around the first opening.
- An arrangement for preventing egress of a gas from a first opening of a vessel as claimed in any one of claims 7 or 8 wherein the plenum chamber (44) receives pressurised gas and the pressurised gas flows from the plenum chamber (44) through the open passage (48) and into the vessel (60).
- An arrangement for preventing egress of a gas from a first opening of a vessel as claimed in any one of claims 7 to 9 wherein the plenum chamber has at least one inlet for receiving pressurised gas.
- An arrangement for preventing egress of a gas from a first opening of a vessel as claimed claim 10 wherein the plenum chamber (44) has two or more inlets (18, 20) for receiving pressurised gas and the two or more inlets (18, 20) are equi-spaced around the plenum chamber.
- An arrangement for preventing egress of a gas from a first opening of a vessel as claimed in any one of claims 3 to 11 wherein the arrangement further comprises a feed chute (52) for feeding material to the vessel.
- An arrangement for preventing egress of a gas from a first opening of a vessel as claimed in any one of claims 3 to 12 wherein the arrangement comprises an insert that is inserted into the first opening (64) of the vessel (60) and when the insert is inserted into the first opening, the inner surface of the insert effectively defines the first opening of the furnace.
- An arrangement for preventing egress of a gas from a first opening of a vessel as claimed in claim 13 wherein the insert includes a portion extending into the first opening of the vessel and another portion that defines the open passage extending around an inner periphery of the insert or wherein the insert also defines a plenum chamber and at least one inlet for receiving pressurised gas or the insert comprises a flange (12) that comes into contact with an outer surface around the first opening of the vessel to thereby position the insert relative to the first opening of the vessel.
Priority Applications (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| HRP20192287TT HRP20192287T1 (en) | 2014-05-21 | 2015-05-21 | Method and arrangement for preventing gas from leaving an opening of a vessel |
| PL15796168T PL3146285T4 (en) | 2014-05-21 | 2015-05-21 | A method and device for preventing gas from escaping from a vessel opening |
| RS20191659A RS59942B1 (en) | 2014-05-21 | 2015-05-21 | Method and arrangement for preventing gas from leaving an opening of a vessel |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| AU2014901896A AU2014901896A0 (en) | 2014-05-21 | Method and Arrangement for Preventing Gas from Leaving an Opening of a Vessel | |
| PCT/AU2015/050262 WO2015176131A1 (en) | 2014-05-21 | 2015-05-21 | Method and arrangement for preventing gas from leaving an opening of a vessel |
Publications (3)
| Publication Number | Publication Date |
|---|---|
| EP3146285A1 EP3146285A1 (en) | 2017-03-29 |
| EP3146285A4 EP3146285A4 (en) | 2017-12-06 |
| EP3146285B1 true EP3146285B1 (en) | 2019-09-25 |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP15796168.1A Active EP3146285B1 (en) | 2014-05-21 | 2015-05-21 | Method and arrangement for preventing gas from leaving an opening of a vessel |
Country Status (14)
| Country | Link |
|---|---|
| US (1) | US10429131B2 (en) |
| EP (1) | EP3146285B1 (en) |
| CN (1) | CN106537075B (en) |
| AU (1) | AU2015263854B2 (en) |
| CA (1) | CA2949142C (en) |
| CL (1) | CL2016002966A1 (en) |
| EA (1) | EA033881B1 (en) |
| ES (1) | ES2773603T3 (en) |
| HR (1) | HRP20192287T1 (en) |
| HU (1) | HUE047753T2 (en) |
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| PL (1) | PL3146285T4 (en) |
| RS (1) | RS59942B1 (en) |
| WO (1) | WO2015176131A1 (en) |
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| CN116608047B (en) * | 2023-05-19 | 2025-11-18 | 长春理工大学 | A microchannel precooler with a biomimetic structure of tuna gill filaments |
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| US1393749A (en) * | 1919-12-08 | 1921-10-18 | American Metal Co Ltd | Blast-furnace |
| US3198623A (en) * | 1961-09-01 | 1965-08-03 | Inland Steel Co | Gas sealing and continuous charging method for blast furnace |
| BE794222A (en) * | 1972-02-23 | 1973-05-16 | Creusot Loire | FLUID SEALING |
| US4138098A (en) * | 1975-08-14 | 1979-02-06 | Creusot-Loire | Method of blowing smelting shaft furnaces and tuyeres used for said blowing |
| US4210315A (en) * | 1977-05-16 | 1980-07-01 | Outokumpu Oy | Means for producing a suspension of a powdery substance and a reaction gas |
| JPS5878499U (en) * | 1981-11-21 | 1983-05-27 | 株式会社ニツコ− | Electric furnace waste gas equipment |
| EP0164878B1 (en) * | 1984-05-11 | 1991-01-23 | JAMES HOWDEN & COMPANY LIMITED | Method of operating metallurgical furnace |
| DE3427086C1 (en) * | 1984-07-19 | 1986-04-10 | Mannesmann AG, 4000 Düsseldorf | Metallurgical vessel |
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| IT1310527B1 (en) * | 1999-01-20 | 2002-02-18 | Danieli Off Mecc | BUFFER SYSTEM OF THE VOLTADI DELTA REGION AN ELECTRIC ARC OVEN |
| KR20150074170A (en) * | 2012-10-24 | 2015-07-01 | 프리메탈스 테크놀로지스 오스트리아 게엠베하 | Method and device for supplying energy into a scrap metal pile in an electric arc furnace |
| CN103629396B (en) * | 2013-09-26 | 2016-01-13 | 汕头市新青罐机有限公司 | Positive/negative-pressure gas distributing device |
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2015
- 2015-05-21 HR HRP20192287TT patent/HRP20192287T1/en unknown
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- 2015-05-21 WO PCT/AU2015/050262 patent/WO2015176131A1/en not_active Ceased
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- 2015-05-21 CA CA2949142A patent/CA2949142C/en active Active
- 2015-05-21 EP EP15796168.1A patent/EP3146285B1/en active Active
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- 2015-05-21 PE PE2016002252A patent/PE20161493A1/en unknown
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- 2015-05-21 US US15/311,952 patent/US10429131B2/en active Active
- 2015-05-21 CN CN201580026022.8A patent/CN106537075B/en active Active
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| EP3146285A1 (en) | 2017-03-29 |
| CN106537075B (en) | 2019-12-10 |
| ES2773603T3 (en) | 2020-07-13 |
| AU2015263854B2 (en) | 2018-11-01 |
| EA201692160A1 (en) | 2017-06-30 |
| CA2949142C (en) | 2022-08-02 |
| US10429131B2 (en) | 2019-10-01 |
| PE20161493A1 (en) | 2017-01-08 |
| CN106537075A (en) | 2017-03-22 |
| PL3146285T3 (en) | 2020-05-18 |
| HRP20192287T1 (en) | 2020-03-20 |
| US20170097192A1 (en) | 2017-04-06 |
| HUE047753T2 (en) | 2020-05-28 |
| PL3146285T4 (en) | 2020-08-10 |
| WO2015176131A1 (en) | 2015-11-26 |
| CL2016002966A1 (en) | 2017-07-14 |
| AU2015263854A1 (en) | 2016-12-08 |
| CA2949142A1 (en) | 2015-11-26 |
| EP3146285A4 (en) | 2017-12-06 |
| EA033881B1 (en) | 2019-12-04 |
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